Nature of granular drag in microgravity

Fuente: arXiv
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Hauptverfasser: Pongo, Tivadar, Liao, Tianhui, Zhao, Jinchen, Dichtl, Valentin, Voelkel, Simeon, Hidalgo, Raul Cruz, Huang, Kai
Format: Preprint
Veröffentlicht: 2026
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author Pongo, Tivadar
Liao, Tianhui
Zhao, Jinchen
Dichtl, Valentin
Voelkel, Simeon
Hidalgo, Raul Cruz
Huang, Kai
author_facet Pongo, Tivadar
Liao, Tianhui
Zhao, Jinchen
Dichtl, Valentin
Voelkel, Simeon
Hidalgo, Raul Cruz
Huang, Kai
contents The influence of gravity on the drag force acting on a projectile impacting granular media is investigated experimentally via embedded inertial measurement unit (IMU) sensor and numerically through discrete element method (DEM) simulations. As gravity approaches zero, inertial drag dominates, yielding qualitatively different scaling laws and cavity dynamics. Analogous to fluid dynamics, we define a dimensionless granular drag coefficient $C_{\rm gd}$, which is found to stay largely at a constant $\sim 1.2$ in microgravity while an additional term inversely proportional to impact velocity arises in the presence of gravity. The constant term can be understood from momentum transfer along the penetration direction while the additional term suggests the influence of internal stress built-up due to gravity. Similar discrepancy is also found for the initial peak of the drag force. This analogy provides novel insights into the nature of granular drag in microgravity and sheds light on future space missions.
format Preprint
id arxiv_https___arxiv_org_abs_2603_03006
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Nature of granular drag in microgravity
Pongo, Tivadar
Liao, Tianhui
Zhao, Jinchen
Dichtl, Valentin
Voelkel, Simeon
Hidalgo, Raul Cruz
Huang, Kai
Soft Condensed Matter
Space Physics
The influence of gravity on the drag force acting on a projectile impacting granular media is investigated experimentally via embedded inertial measurement unit (IMU) sensor and numerically through discrete element method (DEM) simulations. As gravity approaches zero, inertial drag dominates, yielding qualitatively different scaling laws and cavity dynamics. Analogous to fluid dynamics, we define a dimensionless granular drag coefficient $C_{\rm gd}$, which is found to stay largely at a constant $\sim 1.2$ in microgravity while an additional term inversely proportional to impact velocity arises in the presence of gravity. The constant term can be understood from momentum transfer along the penetration direction while the additional term suggests the influence of internal stress built-up due to gravity. Similar discrepancy is also found for the initial peak of the drag force. This analogy provides novel insights into the nature of granular drag in microgravity and sheds light on future space missions.
title Nature of granular drag in microgravity
topic Soft Condensed Matter
Space Physics
url https://arxiv.org/abs/2603.03006